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Papers/BiPOCO: Bi-Directional Trajectory Prediction with Pose Con...

BiPOCO: Bi-Directional Trajectory Prediction with Pose Constraints for Pedestrian Anomaly Detection

Asiegbu Miracle Kanu-Asiegbu, Ram Vasudevan, Xiaoxiao Du

2022-07-05Video Anomaly DetectionAnomaly DetectionAutonomous DrivingPredictionTrajectory Prediction
PaperPDFCode(official)

Abstract

We present BiPOCO, a Bi-directional trajectory predictor with POse COnstraints, for detecting anomalous activities of pedestrians in videos. In contrast to prior work based on feature reconstruction, our work identifies pedestrian anomalous events by forecasting their future trajectories and comparing the predictions with their expectations. We introduce a set of novel compositional pose-based losses with our predictor and leverage prediction errors of each body joint for pedestrian anomaly detection. Experimental results show that our BiPOCO approach can detect pedestrian anomalous activities with a high detection rate (up to 87.0%) and incorporating pose constraints helps distinguish normal and anomalous poses in prediction. This work extends current literature of using prediction-based methods for anomaly detection and can benefit safety-critical applications such as autonomous driving and surveillance. Code is available at https://github.com/akanuasiegbu/BiPOCO.

Results

TaskDatasetMetricValueModel
Anomaly DetectionUBnormalAUC50.7BiPOCO
Anomaly DetectionHR-ShanghaiTechAUC74.9BiPOCO
Anomaly DetectionHR-AvenueAUC87BiPOCO
Anomaly DetectionHR-UBnormalAUC52.3BiPOCO
3D Anomaly DetectionHR-ShanghaiTechAUC74.9BiPOCO
3D Anomaly DetectionHR-AvenueAUC87BiPOCO
3D Anomaly DetectionHR-UBnormalAUC52.3BiPOCO
Video Anomaly DetectionHR-ShanghaiTechAUC74.9BiPOCO
Video Anomaly DetectionHR-AvenueAUC87BiPOCO
Video Anomaly DetectionHR-UBnormalAUC52.3BiPOCO

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